Common-Mode Rejection Ratio of MOSFET when Transconductance Mismatches Solution

STEP 0: Pre-Calculation Summary
Formula Used
Common Mode Rejection Ratio = (2*Transconductance*Output Resistance)/(Change in Transconductance/Transconductance)
CMRR = (2*gm*Rout)/(Δgm/gm)
This formula uses 4 Variables
Variables Used
Common Mode Rejection Ratio - Common Mode Rejection Ratio is a measure of the ability of an electronic circuit, such as an amplifier, to reject noise and interference that is common to both the input signals.
Transconductance - (Measured in Siemens) - Transconductance is defined as the ratio of the change in the output current to the change in the input voltage, with the gate-source voltage held constant.
Output Resistance - (Measured in Ohm) - Output resistance refers to the resistance of an electronic circuit to the flow of current when a load is connected to its output.
Change in Transconductance - (Measured in Siemens) - Change in Transconductance is a measure of the ability of a device, such as a transistor or vacuum tube, to convert an input voltage signal into an output current signal.
STEP 1: Convert Input(s) to Base Unit
Transconductance: 0.5 Millisiemens --> 0.0005 Siemens (Check conversion ​here)
Output Resistance: 4.5 Kilohm --> 4500 Ohm (Check conversion ​here)
Change in Transconductance: 29 Millisiemens --> 0.029 Siemens (Check conversion ​here)
STEP 2: Evaluate Formula
Substituting Input Values in Formula
CMRR = (2*gm*Rout)/(Δgm/gm) --> (2*0.0005*4500)/(0.029/0.0005)
Evaluating ... ...
CMRR = 0.0775862068965517
STEP 3: Convert Result to Output's Unit
0.0775862068965517 --> No Conversion Required
FINAL ANSWER
0.0775862068965517 0.077586 <-- Common Mode Rejection Ratio
(Calculation completed in 00.008 seconds)

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Common Mode Rejection Ratio (CMRR) Calculators

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Common-Mode Signal of MOSFET given Resistance
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Common-Mode Rejection Ratio of MOSFET when Transconductance Mismatches Formula

​LaTeX ​Go
Common Mode Rejection Ratio = (2*Transconductance*Output Resistance)/(Change in Transconductance/Transconductance)
CMRR = (2*gm*Rout)/(Δgm/gm)

What does common mode rejection do?

Common-mode rejection is the ability of the differential amplifier (which sits between the oscilloscope and probes as a signal-conditioning preamp) to eliminate the common-mode voltage from the output. But as signal frequencies rise, CMRR deteriorates.

How to Calculate Common-Mode Rejection Ratio of MOSFET when Transconductance Mismatches?

Common-Mode Rejection Ratio of MOSFET when Transconductance Mismatches calculator uses Common Mode Rejection Ratio = (2*Transconductance*Output Resistance)/(Change in Transconductance/Transconductance) to calculate the Common Mode Rejection Ratio, The Common-mode rejection ratio of MOSFET when transconductance mismatches formula is defined as a differential amplifier (or other devices) is a metric used to quantify the ability of the device to reject common-mode signals, i.e. those that appear simultaneously and in-phase on both inputs. Common Mode Rejection Ratio is denoted by CMRR symbol.

How to calculate Common-Mode Rejection Ratio of MOSFET when Transconductance Mismatches using this online calculator? To use this online calculator for Common-Mode Rejection Ratio of MOSFET when Transconductance Mismatches, enter Transconductance (gm), Output Resistance (Rout) & Change in Transconductance (Δgm) and hit the calculate button. Here is how the Common-Mode Rejection Ratio of MOSFET when Transconductance Mismatches calculation can be explained with given input values -> 0.077586 = (2*0.0005*4500)/(0.029/0.0005).

FAQ

What is Common-Mode Rejection Ratio of MOSFET when Transconductance Mismatches?
The Common-mode rejection ratio of MOSFET when transconductance mismatches formula is defined as a differential amplifier (or other devices) is a metric used to quantify the ability of the device to reject common-mode signals, i.e. those that appear simultaneously and in-phase on both inputs and is represented as CMRR = (2*gm*Rout)/(Δgm/gm) or Common Mode Rejection Ratio = (2*Transconductance*Output Resistance)/(Change in Transconductance/Transconductance). Transconductance is defined as the ratio of the change in the output current to the change in the input voltage, with the gate-source voltage held constant, Output resistance refers to the resistance of an electronic circuit to the flow of current when a load is connected to its output & Change in Transconductance is a measure of the ability of a device, such as a transistor or vacuum tube, to convert an input voltage signal into an output current signal.
How to calculate Common-Mode Rejection Ratio of MOSFET when Transconductance Mismatches?
The Common-mode rejection ratio of MOSFET when transconductance mismatches formula is defined as a differential amplifier (or other devices) is a metric used to quantify the ability of the device to reject common-mode signals, i.e. those that appear simultaneously and in-phase on both inputs is calculated using Common Mode Rejection Ratio = (2*Transconductance*Output Resistance)/(Change in Transconductance/Transconductance). To calculate Common-Mode Rejection Ratio of MOSFET when Transconductance Mismatches, you need Transconductance (gm), Output Resistance (Rout) & Change in Transconductance (Δgm). With our tool, you need to enter the respective value for Transconductance, Output Resistance & Change in Transconductance and hit the calculate button. You can also select the units (if any) for Input(s) and the Output as well.
How many ways are there to calculate Common Mode Rejection Ratio?
In this formula, Common Mode Rejection Ratio uses Transconductance, Output Resistance & Change in Transconductance. We can use 3 other way(s) to calculate the same, which is/are as follows -
  • Common Mode Rejection Ratio = (2*Transconductance*Output Resistance)/(Change in Drain Resistance/Drain Resistance)
  • Common Mode Rejection Ratio = Transconductance*(1/(1/Primary Winding Resistance in Secondary+1/Secondary Winding Resistance in Primary))*(2*Change in Transconductance*Finite Output Resistance)
  • Common Mode Rejection Ratio = (Transconductance*Finite Output Resistance)*(Transconductance*Source Resistance)
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